Sandbox 719: Difference between revisions
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==== The tetramer Interface ==== | ==== The tetramer Interface ==== | ||
[[Image:Tetramer-interface.jpg |200px|left|thumb|Figure 1: Ribbon diagram of the DsRed tetramer, produced by MOLSCRIPT (28). Monomers are labeled with uppercase A–D, and the carboxy termini are labeled with lowercase a– d. The amino termini are obscured in this view. Note the antenna-like array of the chromophores, antiparallel in pairs.]] | [[Image:Tetramer-interface.jpg |200px|left|thumb|Figure 1: Ribbon diagram of the DsRed tetramer, produced by MOLSCRIPT (28). Monomers are labeled with uppercase A–D, and the carboxy termini are labeled with lowercase a– d. The amino termini are obscured in this view. Note the antenna-like array of the chromophores, antiparallel in pairs.]] | ||
The most striking feature of DsRed is that, as shown in Figure 1, it exists as an extremely close-packed tetramer, quite unlike the primarily monomeric avGFP. The tetramer is a square prism with remarkably flat sides and a small elliptical hole directly through the center. The hole is lined with polar residues and salt bridges and localizes a number of solvent molecules. | The most striking feature of DsRed is that, as shown in Figure 1, it exists as an extremely close-packed tetramer, quite unlike the primarily monomeric avGFP. It is a dimer of dimer. The whole tetramer is a square prism with remarkably flat sides and a small elliptical hole directly through the center. The hole is lined with polar residues and salt bridges and localizes a number of solvent molecules. | ||
The accessible surface area of the isolated monomer <ref>The interpretation of protein structures: estimation of static accessibility. Lee B, Richards FM. PubMed : [http://www.ncbi.nlm.nih.gov/pubmed?term=The%20interpretation%20of%20protein%20structures%3A%20estimation%20of%20static%20accessibility here]</ref> | The accessible surface area of the isolated monomer is around 10,230 Ų, and that of the tetramer is 31,420 Ų, so roughly 25% of the monomer surface is not solvent accessible in the tetramer<ref>The interpretation of protein structures: estimation of static accessibility. Lee B, Richards FM. PubMed : [http://www.ncbi.nlm.nih.gov/pubmed?term=The%20interpretation%20of%20protein%20structures%3A%20estimation%20of%20static%20accessibility here]</ref>. | ||
The AB interface does not seem to have particularly notable features and consists of hydrophobic interactions between small side chains, although a few hydrogen bonds and salt bridges are also present. | The AB interface does not seem to have particularly notable features and consists of hydrophobic interactions between small side chains, although a few hydrogen bonds and salt bridges are also present. | ||
On the other hand, interactions in the AC (and BD) interface consist largely of salt bridges and hydrogen bonds, many of which are mediated by buried water molecules, as well a surprisingly large number of interactions involving aromatic residues. | On the other hand, interactions in the AC (and BD) interface consist largely of salt bridges and hydrogen bonds, many of which are mediated by buried water molecules, as well a surprisingly large number of interactions involving aromatic residues. | ||
==== The Chromophore environment ==== | ==== The Chromophore environment ==== | ||